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A Critical Review on Crystal Growth Techniques for Scalable Deposition of Photovoltaic Perovskite Thin Films

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Publisher MDPI
Date 2020 Nov 3
PMID 33138192
Citations 8
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Abstract

Although the efficiency of small-size perovskite solar cells (PSCs) has reached an incredible level of 25.25%, there is still a substantial loss in performance when switching from small size devices to large-scale solar modules. The large efficiency deficit is primarily associated with the big challenge of coating homogeneous, large-area, high-quality thin films via scalable processes. Here, we provide a comprehensive understanding of the nucleation and crystal growth kinetics, which are the key steps for perovskite film formation. Several thin-film crystallization techniques, including antisolvent, hot-casting, vacuum quenching, and gas blowing, are then summarized to distinguish their applications for scalable fabrication of perovskite thin films. In viewing the essential importance of the film morphology on device performance, several strategies including additive engineering, Lewis acid-based approach, solvent annealing, etc., which are capable of modulating the crystal morphology of perovskite film, are discussed. Finally, we summarize the recent progress in the scalable deposition of large-scale perovskite thin film for high-performance devices.

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References
1.
Zhao Y, Wei J, Li H, Yan Y, Zhou W, Yu D . A polymer scaffold for self-healing perovskite solar cells. Nat Commun. 2016; 7:10228. PMC: 4729821. DOI: 10.1038/ncomms10228. View

2.
Shi D, Adinolfi V, Comin R, Yuan M, Alarousu E, Buin A . Solar cells. Low trap-state density and long carrier diffusion in organolead trihalide perovskite single crystals. Science. 2015; 347(6221):519-22. DOI: 10.1126/science.aaa2725. View

3.
Zuo C, Ding L . An 80.11% FF record achieved for perovskite solar cells by using the NH4Cl additive. Nanoscale. 2014; 6(17):9935-8. DOI: 10.1039/c4nr02425g. View

4.
Ito S, Mizuta G, Kanaya S, Kanda H, Nishina T, Nakashima S . Light stability tests of CHNHPbI perovskite solar cells using porous carbon counter electrodes. Phys Chem Chem Phys. 2016; 18(39):27102-27108. DOI: 10.1039/c6cp03388a. View

5.
Liu S, Zhang X, Zhang L, Xie W . Ultrasonic spray coating polymer and small molecular organic film for organic light-emitting devices. Sci Rep. 2016; 6:37042. PMC: 5118812. DOI: 10.1038/srep37042. View